Size-dependent exchange bias in vortex-stabilized Py/IrMn hemispherical nanocaps

Abstract The size-dependent exchange-bias in Py/Ir 23 Mn 77 (IrMn) magnetic nanocaps was investigated. The magnetic cap structures were fabricated by depositing magnetic thin films of layer stack Py (40 nm)/Ir 23 Mn 77 ( t = 3 nm, 5 nm, 7 nm)/Pt (5 nm) onto large, closely packed arrays of polystyrene spheres with diameters of 175 nm, 607 nm, and 1020 nm. By zero-field cooling below the blocking temperature of the antiferromagnetic IrMn grains, the spin structure of the Py layer is imprinted into the IrMn, which manifests as an increase in the vortex nucleation and annihilation fields. Under field cooling, either a displaced vortex state or a C-state can be stabilized. Furthermore, we investigated the distribution of blocking temperatures across the Py/IrMn sample series. Blocking temperature measurements indicated a distribution of IrMn grain stabilities, where the mean blocking temperature was found to increase with IrMn thickness but decrease with increasing nanocap diameter. This study demonstrates that the exchange bias in Py/IrMn magnetic vortex caps can be effectively tailored by varying the diameter of the cap structures and the thickness of the IrMn layer.

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Publication Details

Journal
Nanotechnology
Published
2026-09-18
DOI
https://doi.org/10.1088/1361-6528/aea335
Primary Topic
Magnetic properties of thin films
Type
article
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Size-dependent exchange bias in vortex-stabilized Py/IrMn hemispherical nanocaps

Senoy Thomas, Aladin Ullrich, Johannes Seyd, M. Albrecht et al.
Nanotechnology
Magnetic properties of thin films
article

Size-dependent exchange bias in vortex-stabilized Py/IrMn hemispherical nanocaps

Senoy Thomas, Aladin Ullrich, Johannes Seyd, M. Albrecht, Shan Abraham Sam, Michał Krupiński, Stephan Glamsch, Christian Holzmann, Joe Sunny
article en

Abstract

Abstract The size-dependent exchange-bias in Py/Ir 23 Mn 77 (IrMn) magnetic nanocaps was investigated. The magnetic cap structures were fabricated by depositing magnetic thin films of layer stack Py (40 nm)/Ir 23 Mn 77 ( t = 3 nm, 5 nm, 7 nm)/Pt (5 nm) onto large, closely packed arrays of polystyrene spheres with diameters of 175 nm, 607 nm, and 1020 nm. By zero-field cooling below the blocking temperature of the antiferromagnetic IrMn grains, the spin structure of the Py layer is imprinted into the IrMn, which manifests as an increase in the vortex nucleation and annihilation fields. Under field cooling, either a displaced vortex state or a C-state can be stabilized. Furthermore, we investigated the distribution of blocking temperatures across the Py/IrMn sample series. Blocking temperature measurements indicated a distribution of IrMn grain stabilities, where the mean blocking temperature was found to increase with IrMn thickness but decrease with increasing nanocap diameter. This study demonstrates that the exchange bias in Py/IrMn magnetic vortex caps can be effectively tailored by varying the diameter of the cap structures and the thickness of the IrMn layer.

NanotechnologyVol. 37(37)
University of Augsburg (DE), Cochin University of Science and Technology (IN), Polish Academy of Sciences (PL)
Openalex Percentile: Top 13%
Magnetic properties of thin films
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Size-dependent exchange bias in vortex-stabilized Py/IrMn hemispherical nanocaps — Senoy Thomas, Aladin Ullrich, et al. · Nanotechnology (2026) | TGRS Research Map | TGRS